Remote Monitoring of Treatment Response in Parkinson's Disease: The Habit of Typing on a Computer

被引:30
作者
Matarazzo, Michele [1 ,2 ,3 ,4 ,5 ]
Arroyo-Gallego, Teresa [6 ,7 ,8 ,9 ]
Montero, Paloma [3 ,10 ]
Puertas-Martin, Veronica [3 ]
Butterworth, Ian [11 ]
Mendoza, Carlos S. [11 ]
Ledesma-Carbayo, Maria J. [6 ,7 ]
Catalan, Maria Jose [10 ]
Molina, Jose Antonio [3 ]
Bermejo-Pareja, Felix [3 ]
Martinez-Castrillo, Juan Carlos [12 ]
Lopez-Manzanares, Lydia [13 ]
Alonso-Canovas, Araceli [12 ]
Rodriguez, Jaime Herreros [14 ]
Obeso, Ignacio [1 ,2 ,4 ]
Martinez-Martin, Pablo [4 ,15 ]
Martinez-Avila, Jose Carlos [16 ]
de la Camara, Agustin Gomez [16 ]
Gray, Martha [8 ,11 ]
Obeso, Jose A. [1 ,2 ,4 ]
Giancardo, Luca [8 ,17 ]
Sanchez-Ferro, Alvaro [1 ,2 ,3 ,4 ,8 ]
机构
[1] Hosp Univ HM Puerta Sur, HM CINAC, Mostoles, Spain
[2] CEU San Pablo Univ, Sch Med, Madrid, Spain
[3] Inst Invest Hosp 12 Octubre, Dept Neurol, Madrid, Spain
[4] Ctr Invest Biomed Red Enfermedades Neurodegenerat, Madrid, Spain
[5] Univ British Columbia, Pacific Parkinsons Res Ctr, Vancouver, BC, Canada
[6] Univ Politecn Madrid, Biomed Image Technol, Madrid, Spain
[7] CIBERBBN, Madrid, Spain
[8] MIT, Inst Med Engn & Sci, 77 Massachusetts Ave, Cambridge, MA 02139 USA
[9] nQ Med Inc, Cambridge, MA USA
[10] Hosp Clin San Carlos, Movement Disorders Unit, Madrid, Spain
[11] MIT, Elect Res Lab, Cambridge, MA 02139 USA
[12] Hosp Ramon & Cajal, Movement Disorders Unit, Madrid, Spain
[13] Hosp Princesa, Movement Disorders Unit, Madrid, Spain
[14] Hosp Infanta Leonor, Dept Neurol, Madrid, Spain
[15] Carlos III Inst Hlth, Natl Ctr Epidemiol, Area Appl Epidemiol, Madrid, Spain
[16] Hosp Univ 12 Octubre, Clin Res Unit, Inst Invest Hosp 12 Octubre, Consorcio Invest Biomed Red Epidemiol & Salud Pub, Madrid, Spain
[17] Univ Texas Hlth Sci Ctr Houston, Ctr Precis Hlth, Sch Biomed Informat, Houston, TX 77030 USA
关键词
drug monitoring; machine learning; neural network; Parkinson's disease; technology; MOTOR IMPAIRMENT; BRADYKINESIA; PRAMIPEXOLE;
D O I
10.1002/mds.27772
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Objective The recent advances in technology are opening a new opportunity to remotely evaluate motor features in people with Parkinson's disease (PD). We hypothesized that typing on an electronic device, a habitual behavior facilitated by the nigrostriatal dopaminergic pathway, could allow for objectively and nonobtrusively monitoring parkinsonian features and response to medication in an at-home setting. Methods We enrolled 31 participants recently diagnosed with PD who were due to start dopaminergic treatment and 30 age-matched controls. We remotely monitored their typing pattern during a 6-month (24 weeks) follow-up period before and while dopaminergic medications were being titrated. The typing data were used to develop a novel algorithm based on recursive neural networks and detect participants' responses to medication. The latter were defined by the Unified Parkinson's Disease Rating Scale-III (UPDRS-III) minimal clinically important difference. Furthermore, we tested the accuracy of the algorithm to predict the final response to medication as early as 21 weeks prior to the final 6-month clinical outcome. Results The score on the novel algorithm based on recursive neural networks had an overall moderate kappa agreement and fair area under the receiver operating characteristic (ROC) curve with the time-coincident UPDRS-III minimal clinically important difference. The participants classified as responders at the final visit (based on the UPDRS-III minimal clinically important difference) had higher scores on the novel algorithm based on recursive neural networks when compared with the participants with stable UPDRS-III, from the third week of the study onward. Conclusions This preliminary study suggests that remotely gathered unsupervised typing data allows for the accurate detection and prediction of drug response in PD. (c) 2019 International Parkinson and Movement Disorder Society
引用
收藏
页码:1488 / 1495
页数:8
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